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Methods and innovations

Efficient, large-scale archaeological prospection using a true 3D GPR array system

Immo Trinks, Jaana Gustafsson, Jesper Emilsson, Christer Gustafsson, Bernth Johansson and Johan Nissen
p. 367-370

Index terms

Keywords:

3D GPR, MIRA

Geographical index:

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Introduction

1Many case studies in the past have shown that non-destructive GPR prospection can be used successfully to generate high-resolution images of the subsurface. The method can be of great value both to pin-point areas for future excavations and to gain information of areas where digs may be fruitless or should be avoided in order to protect the buried structures. However, traditional archaeological GPR prospection covering large areas generally is both time consuming and expensive.

2Over the last years attempts for increased efficiency and resolution of GPR measurements through the use of parallel 2D measurements (Pipan et al., 1999; Whiting et al., 2001; Neubauer, 2001; Leckebusch, 2005; Seren et al., 2004) have been observed. The collection of 2D GPR sections with dense cross-line spacing and their exact positioning is time consuming (Leckebusch and Peikert, 2001; Slob et al., 2003). To overcome this several antennas can instead be used precisely positioned in multi-channel antenna arrays as demonstrated by both operators (Leckebusch, 2005) and GPR system manufacturers. To achieve full-resolution 3D imaging (without aliasing the data) the individual channel spacing should however not exceed ¼ of the wavelength of the antennas centre frequency (Grasmueck et al.,2005).

3In May 2008 the GPR manufacturer Malå Geoscience AB in collaboration with the archaeological prospection unit of the Swedish National Heritage Board conducted a large scale archaeological prospection study using the new Malå Imaging Radar Array (MIRA). This array system is defined by 1) closely spaced channels, 2) free combination of transmitter and receiver antennas, 3) near-identical antenna responses and 4) precise positioning. The purpose of this pilot study was to test the performance of this array GPR system in practice at a site where well expressed archaeological structures are known to exist in the ground.

The Malå Imaging Radar Array (MIRA)

4The MIRA standard system consists of 17 GPR antennas (400 MHz) positioned in two overlapping rows of 9 transmitter and 8 receiver antennas. The MIRA system can be equipped with up to 16 transmitters and 15 receiver antennas. Aside from the 400 MHz system, antennas of 200 MHz or 1.3 GHz are available. Each receiver antenna is recording signals of two adjacent transmitter antennas, resulting in case of the 400 MHz antenna system in 16 channels with a cross-line trace spacing of 8 cm (Fig. 1), corresponding to ¼ of the wavelength.

Figure 1: The MIRA mounted in front of a front mower.

Figure 1: The MIRA mounted in front of a front mower.

The prism for positioning using a total station is seen next to the yellow antenna box. The box contains an array of 17 antennas as shown in the sketch (right). Dotted lines indicate transmitter and receiver antenna combinations and arrows the 16 different channels (profiles) measured in one survey swath.

5The 16 channel system covers a 128 cm wide swath for each driven track. In-line GPR trace sampling was set to 8 cm with a trace stacking factor of 4. The antenna array is placed in a box mounted ahead of a motorized front mower with hydraulic lift (Fig. 1). Power supply and a field computer for data collection are provided on the vehicle.

6Accurate positioning of the GPR measurements is crucial. For this purpose a total station was used (RTK-GPS is also applicable). The position information from the total station is transferred via radio link to the measurement vehicle where the information is recorded together with the GPR data. The total station prism is mounted on the antenna array (Fig. 1). For orientation of the individual swaths a spray paint maker device is used to mark the start- and end-points as well as the course of individual profiles.

7The GPR and positioning data from the MIRA system is directly handled in the rSlicer software avoiding complicated and time consuming import routines. This software allows the pre-processing, interpolation, coordinate system transformation and 3D migration of the GPR data, followed by interactive interpretation of the observed features. The results can be printed and exported as geo-referenced TIFF- or DXF-files.

Description of the survey site and fieldwork

8The test survey took place at the site of the Viking age town and trading place Birka on the island of Björkö in Lake Mälaren. Birka is believed to have been Sweden’s first town, existing between 790 and 970 AD. After the town had been abandoned the place has remained largely undisturbed, except of some agricultural land use. Underneath the uppermost plough layer a cultural layer of up to 2 metres thickness in central parts of the town, containing Viking age structures, can be expected to extend across an area of 15 to 20 hectares, the so called Black Earth. Scientifically documented archaeological excavations have been conducted over an area covering less than 1 % of the entire town area. In 2006 a single channel GPR test survey had been conducted at Birka resulting in the detection of several well expressed archaeological structures (Trinks et al., 2007).

Figure 2 View of the survey area.

Figure 2 View of the survey area.

The extent of the GPR survey area covering three hectares is marked with a white line. The first two MIRA survey tracks are indicated with arrows.

9Parallel swaths of up to 170 m length were measured in one direction at a speed of approximately 4 km/h. A flat, even and smooth ground would permit higher survey speeds of up to approximately 19 km/h with the same settings. Generally it is the site conditions (surface roughness, obstacles preventing straight lines, crossing traffic etc.) which practically limit the survey speed. In grass the vehicle tracks where clearly visible and permitted in combination with degradable colour spray paint markers a good guidance to achieve complete area coverage. Successive profiles were measured with a small overlap in order to avoid gaps in the data.

10In order to generate a base map over the survey area, point and line features in the surroundings were directly mapped in the data acquisition software and subsequently used during data processing.

11Within 5 hours we recorded 56 survey swaths covering 150 m by 62 m with an in-line and cross-line trace spacing of 8 cm, corresponding to 134.4 line kilometres. Two surveyors using a manually operated single antenna with 25 cm cross-line and 5 cm in-line trace spacing would, in comparison, cover an area of 50 m by 50 m within the same time (in total 10 line km).

12Over the course of three days an interconnected area covering three hectares was surveyed in the Black Earth area of Birka. The processing of this amount of data was done during two days, resulting in geo-referenced times-slices.

Results and Conclusions

13The novel MIRA system used in this investigation permitted the discovery and mapping of a considerable number of archaeologically interesting features of the Black Earth at Birka in unprecedented resolution. Since large excavations in this specific area are prohibitively expensive and in their nature destructive to the archaeological site, the pilot survey has resulted in valuable new archaeological information of hitherto unseen quality which otherwise would not have been obtainable. The large amount of data posses challenges in regard to data handling and interpretation. The data covering an area of approximately three hectares will be analysed in more detail, but already at a first glance several housing areas, tracks, and parts of the older city wall have been revealed in the generated high-resolution time slices (see example in Fig. 3).

Figure 3: Left: Overview of the investigated area. A town rampart is marked with A. Right: detail of a depth-slice at approximately 0.5 m depth showing a Viking age house measuring 20 m by 9 m with curved side walls. Internal structures can be seen inside the house. In the very high resolution data reflections from small stones associated with individual postholes are visible.

Figure 3: Left: Overview of the investigated area. A town rampart is marked with A. Right: detail of a depth-slice at approximately 0.5 m depth showing a Viking age house measuring 20 m by 9 m with curved side walls. Internal structures can be seen inside the house. In the very high resolution data reflections from small stones associated with individual postholes are visible.

14A considerable increase in both GPR survey speed (16 fold or more) and sampling density compared to single channel measurements has been demonstrated. The laborious setup of survey grids and placement of profile lines on the ground is superseded by the use of a total station or RTK-GPS.

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Bibliography

Grasmueck, M., Weger, R., Horsmeyer, H., 2005. Full-resolution 3D GPR imaging. Geophysics 70: K12-K19

Leckebusch, J., 2005. Use of antenna arrays for GPR surveying in archaeology. Near Surface Geophysics, 3: 107–115.

Leckebusch, J., Peikert, R., 2001.Investigating the true resolution and three-dimensional capabilities of ground-penetrating radar data in archaeological surveys: measurements in a sand box. Archaeological Prospection, 8: 29–40.

Neubauer, W., 2001. Images of the invisible - prospecting methods for the documentation of threatened archaeological sites. Naturwissenschaften, 88: 13–24.

Neubauer, W., Eder-Hinterleitner, A., Seren, S., Melichar, P., 2002.Georadar in the Roman Civil Town Carnatum, Austria: An approach for archaeological interpretation of GPR data. Archaeological Prospection, 9: 135–156.

Pipan, M., Baradello, L., Forte, E., Prizzon, A. and Finetti, I., 1999.2-D and 3-D processing and interpretation of multi-fold ground penetrating radar data: a case history from an archaeological site. Journal of Applied Geophysics 41: 271–292.

Seren, S., Eder-Hinterleitner, A., Neubauer, W. and Groh, S., 2004. Combined high-resolution magnetics and GPR surveys of the roman town of Flavia Solva. Near Surface Geophysics 2: 63–68.

Slob, E. C., Groenenboom, J. and Fokkema, J. T., 2003. Automated acquisition and processing of 3D GPR Data for object detection and characterization. Subsurface Sensing Technologies and Applications, 4(1): 5-18.

Trinks, I., Larsson, L. I. and Eder-Hinterleitner, A., 2007.Mapping of Sweden’s first town Birka using georadar and magnetometer prospection. ŠTUDIJNÉ ZVESTI ARCHEOLOGICKÉ ÚSTAVU SAV, 41: 245-246.

Trinks, I., Nissen, J., Johansson, B., Emilsson, J., Gustafsson, C., Friborg, J. and Gustafsson, J. 2008. Pilot study of the new multichannel GPR system MIRA for large scale, high-resolution archaeological prospection at the site of the Viking town Birka in Sweden. Newsletter of the International Society for Archaeological Prospection, 16: 4-7.

Whiting, B. M., McFarland, D. P. and Hackenberger, S., 2001. Three-dimensional GPR study of a prehistoric site in Barbados, West Indies. Journal of Applied Geophysics, 47: 217-226.

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List of illustrations

Title Figure 1: The MIRA mounted in front of a front mower.
Caption The prism for positioning using a total station is seen next to the yellow antenna box. The box contains an array of 17 antennas as shown in the sketch (right). Dotted lines indicate transmitter and receiver antenna combinations and arrows the 16 different channels (profiles) measured in one survey swath.
URL http://journals.openedition.org/archeosciences/docannexe/image/1857/img-1.jpg
File image/jpeg, 160k
Title Figure 2 View of the survey area.
Caption The extent of the GPR survey area covering three hectares is marked with a white line. The first two MIRA survey tracks are indicated with arrows.
URL http://journals.openedition.org/archeosciences/docannexe/image/1857/img-2.jpg
File image/jpeg, 116k
Title Figure 3: Left: Overview of the investigated area. A town rampart is marked with A. Right: detail of a depth-slice at approximately 0.5 m depth showing a Viking age house measuring 20 m by 9 m with curved side walls. Internal structures can be seen inside the house. In the very high resolution data reflections from small stones associated with individual postholes are visible.
URL http://journals.openedition.org/archeosciences/docannexe/image/1857/img-3.png
File image/png, 262k
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References

Bibliographical reference

Immo Trinks, Jaana Gustafsson, Jesper Emilsson, Christer Gustafsson, Bernth Johansson and Johan Nissen, “Efficient, large-scale archaeological prospection using a true 3D GPR array system”ArcheoSciences, 33 (suppl.) | 2009, 367-370.

Electronic reference

Immo Trinks, Jaana Gustafsson, Jesper Emilsson, Christer Gustafsson, Bernth Johansson and Johan Nissen, “Efficient, large-scale archaeological prospection using a true 3D GPR array system”ArcheoSciences [Online], 33 (suppl.) | 2009, Online since 30 October 2011, connection on 29 March 2024. URL: http://journals.openedition.org/archeosciences/1857; DOI: https://doi.org/10.4000/archeosciences.1857

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About the authors

Immo Trinks

Swedish National Heritage Board, Archaeological Excavation Department (immo.trinks@raa.se)

By this author

Jaana Gustafsson

Malå Geoscience AB. (jaana.gustafsson@malags.se)

Jesper Emilsson

Malå Geoscience ABJohan FriborgMalå Geoscience AB

Christer Gustafsson

Malå Geoscience AB

Bernth Johansson

Malå Geoscience AB (bernth.johansson@malags.se)

Johan Nissen

Malå Geoscience AB

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Copyright

CC-BY-NC-ND-4.0

The text only may be used under licence CC BY-NC-ND 4.0. All other elements (illustrations, imported files) are “All rights reserved”, unless otherwise stated.

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